Summary Sheets - Unit 1

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CfE
Higher
Unit 1 Our Dynamic Universe
Summary
Notes
1
1.1 Equations of Motion
Vectors
Vectors and Scalars (Revision of National 5)
It is possible to split up quantities in physics into two distinct groups, those that need a direction and those
that don’t. Some are obvious - it makes sense that force has direction; you can push or pull but you need
to specify the direction.
It would be nonsense to give a direction to time. To say: “It took 5 seconds East” just isn’t right. It is
important that you are familiar with which quantity falls into which grouping.
A scalar is a quantity that can be described by just a size and a unit. e.g. time - 30 s, mass - 20 kg.
A vector is a quantity that is fully described with a size and direction.
e.g. force - 50 N downwards velocity - 20 ms-1 East.
Adding Vectors (Revision of National 5)
This is more difficult than adding scalars as the direction of the vectors must be taken into account.
The addition of two vectors is called the resultant vector.
When you add vectors they have to be added tip-to-tail.
What does this mean?
 Each vector must be represented by a straight line of suitable scale.
 The straight line must have an arrow head to show its direction. i.e.
tail
tip

The vectors must be joined one at a time so that the tip of the previous vector touches the tail of
the next vector. i.e.

A straight line is drawn from the starting point to the finishing point and the starting angle is
marked.
resultant



The resultant should have 2 arrow heads to make it easy to recognise.
If using a scale diagram the length and direction of this straight line gives the resultant vector.
Alternatively you can use trigonometry and SOHCAHTOA or the sine or cosine rule to calculate the
resultant.
2
Distance and Displacement (Revision of National 5)
The distance travelled by an object is the sum of the distances of each stage of the journey.
Since each stage has a different direction, the total distance has no single direction and therefore distance
is a scalar.
The displacement of an object is the shortest route between the start and finish point measured in a
straight line.
Displacement has a direction and is a vector.
Consider the journey below. A person walks along a path (solid line) from start to end.
They will have walked further following the path than if they had been able to walk directly from start to
end in a straight line (dashed line).
The solid line denotes the distance = 3km. The dashed line denotes the displacement = 2.7 km East
Example
A woman walks her dog 3 km due North (000) and then 4 km (030).
Find her
a) distance travelled
b) displacement.
Solution – Use a ruler to measure the lengths of the vectors and a protractor to measure the bearing.
 Choose an appropriate scale e.g. 1cm : 1km
 Mark the start point with an X, draw a North line and draw the first vector.
 Draw a North line at the tip of this vector and now draw the second vector (tip to tail)
 Draw the resultant vector from start to end using the double arrow.
 Measure the length of the line and the bearing.
When measuring bearings remember - from START – CLOCKWISE – from NORTH
4
N
030
3
N
3
Speed and Velocity (Revision of National 5)
Speed is defined as the distance travelled per second and is measured in metres per second, or ms-1.
Since distance and time are both scalar quantities then speed is also a scalar quantity.
From previous work in Maths and Physics we know that speed is calculated from the equation:
v=d/t
The velocity of an object is defined as the displacement travelled per second.
Since displacement is a vector quantity that means that velocity is also a vector and has the symbol v.
The equation for velocity is:
v=s/t
Example
A runner sprints 100 m East along a straight track in 12 s and then takes a further 13 s to jog 20 m back
towards the starting point.
(a) What distance does she run during the 25 s?
(b) What is her displacement from her starting point after the 25 s?
(c) What is her speed?
(d)What is her velocity?
Solution – always draw the vector diagram.
a) d = 100 + 20
d = 120 m
(b) s = 100 + ( − 20 )
s = 80 m (090)
c) v = d / t
v = 120/25
v = 4.8 ms-1
(d) v = s / t
v = 80/25
v = 3.2 ms-1 (090)
4
Resolving Vectors
We have seen that two vectors can be added to give the resultant using vector addition.
Can we split a resultant vector into the two individual vectors that make it up?
Consider the following.
V
This shows a resultant vector, V, at an angle Ө to the horizontal.
To travel to the end of the vector we could move in a straight line in the X direction and then a straight
line in the Y direction as shown below.
V
Vv
VH
But how do we find out the size of each line?
Since we have a right angled triangle with a known angle we can name the sides.
This means we can use Pythagoras’ theroem to work out the unknown sides.
horizontal component
VH = VcosӨ
vertical component
VV = VsinӨ
Example
A football is kicked at an angle of 70o at 15 ms-1.
Calculate:
Solution
VH = VcosӨ = 15cos70 = 5.2 ms-1
Vv = VsinӨ = 15sin70 = 14.1 ms-1
a) the horizontal component of the velocity;
b) the vertical component of the velocity.
5
The 3 Equations of Motion
The 3 Equations of Motion (s u v a t)
The equations of motion can be applied to any object moving with constant acceleration in a straight line.
You must be able to:
 select the correct formula;
 identify the symbols and units used;
 carry out calculations to solve problems of real life motion; and
 carry out experiments to verify the equations of motion.
You should develop an understanding of how the graphs of motion can be used to derive the equations.
This is an important part of demonstrating that you understand the principles of describing motion, and
the link between describing it graphically and mathematically.
Equation of Motion 1 : v = u + at
𝑎=
𝑣−𝑢
𝑡
at = v – u
u + at = v
OR
v = u + at
Example
A racing car starts from rest and accelerates uniformly in a straight
line at 12 ms-2 for 5.0 s. Calculate the final velocity of the car.
Solution LIST s u v a t
S
u = 0 ms-1 (rest)
v
a = 12 ms-2
t = 5.0 s
v = u + at
v = 0 + (12 x5.0)
v = 0 + 60
v = 60 ms-1
6
The 3 Equations of Motion (ctd)
Equation of Motion 2: s = ut + ½ at2
The displacement, s, is the area under the graph:
Area 1 = ut
Area 2 = ½ (v-u) t
But from equation 1 we get that (v-u) = at
So Area 2 = ½ (at)t
Therefore,
s = ut + ½ (at)t
OR
s = ut + ½ at2
2
1
Example
A speedboat travels 400 m in a straight line when it accelerates uniformly
from 2.5 ms-1 in 10 s. Calculate the acceleration of the speedboat.
Solution
s = 400 m
s = ut+ ½ at2
u = 2.5 ms-1
400 = (2.5 x 10) + (0.5 x a x102)
v
400 = 25 + 50a
a=?
50a = 400 - 25 = 375
t = 10 s
a = 375/50
a = 7.5 ms-2
Equation of Motion 3: v2 = u2 + 2as
We have already found that
v = u + at
(square both sides) v2 = (u + at)2
v2 = u2 + 2uat + a2t2
v2 = u2 + 2a(ut + ½ at2)
And since s = ut + ½ at2
v2 = u2 + 2as
Example
A rocket is travelling through outer space with uniform velocity. It then accelerates at 2.5 ms -2 in a straight
line in the original direction, reaching 100 ms-1 after travelling 1875 m.
Calculate the rocket's initial velocity.
Solution
s = 1 875 m
u=?
v = 100 ms-1
a = 2.5 ms-2
t
v2 = u2 + 2as
1002 = u2 + (2 x 2.5 x 1875)
10 000 = u2 +9375
u2 = 10 000 - 9375
7
u = 25ms-1
u = 25 ms-1
The 3 Equations of Motion with Decelerating Objects
When an object decelerates its velocity decreases. If the vector quantities in the equations of motion are
positive, we represent the decreasing velocity by use of a negative sign in front of the acceleration value.
Example 1
A car, travelling in a straight line, decelerates uniformly at 2.0 ms-2 from 25 ms-1 for 3.0 s.
Calculate the car's velocity after the 3.0 s.
Solution
s
u = 25 ms-1
v=?
a = -2.0 ms-2
t = 3.0 s
v = u + at
v = 25 + (-2.0 x 3.0)
v = 25 + (-6.0)
v = 19 ms-1
Example 2
A greyhound is running at 6.0 ms-1. It decelerates uniformly in a straight line at 0.5 ms-2 for 4.0 s.
Calculate the displacement of the greyhound while it was decelerating.
Solution
s=?
u = 6.0 ms-1
v
a = -0.5 ms-2
t = 4.0 s
s = ut + ½ at2
s = (6.0 x 4.0) + (0.5 x -0.5 x 4.02)
s = 24 + (-4.0)
s = 20 m
Example 3
A curling stone leaves a player's hand at 5.0 ms-1 and decelerates uniformly at 0.75ms-2 in a straight line for
16.5 m until it strikes another stationary stone.
Calculate the velocity of the decelerating curling stone at the instant it strikes the stationary one.
Solution
s = 16.5 m
u = 5.0 ms-1
v=?
a = -0.75 ms-2
t
v2 = u2 + 2as
v2 = 5.02+ (2 x -0.75 x 16.5)
v2 = 25 + (-24.75)
v = √0.25
v = 0.5 ms-1
8
Graphing Motion
Graphs
In all areas of science, graphs are used to display information.
Graphs are an excellent way of giving information, especially to show relationships between quantities.
In this section we will be examining three types of motion-time graphs.
Displacement-time graphs
Velocity-time graphs
Acceleration-time graphs
If you have an example of one of these types of graph then it is possible to draw a corresponding graph for
the other two factors.
Displacement – time graphs
This graph represents how far an object is from its starting point at some known time. Because
displacement is a vector it can have positive and negative values. (+ve and –ve will be opposite directions
from the starting point).
A
B
C
s
0
X
t
OA – the object is moving away from the starting point. It is moving a constant displacement each second.
This is shown by the constant gradient. What does this mean?
gradient =
𝐝𝐢𝐬𝐩𝐥𝐚𝐜𝐞𝐦𝐞𝐧𝐭
𝐭𝐢𝐦𝐞
= velocity
We can determine the velocity from the gradient of a displacement time graph.
AB – the object has a constant displacement so is not changing its position, therefore it must be at rest. The
gradient in this case is zero, which means the object has a velocity of zero [at rest]
BC – the object is now moving back towards the starting point, reaching it at time x. It then continues to
move away from the start, but in the opposite direction. The gradient of the line is negative, indicating the
change in direction of motion.
9
Converting Displacement – time Graphs to Velocity-time Graphs
s
0
t
v
0
t
The velocity time graph is essentially a graph of the gradient of the displacement time graph. It is important
to take care to determine whether the gradient is positive or negative.
The gradient gives us the information to determine the direction an object is moving.
There are no numerical values given on the graphs above. Numbers are not needed to allow a description.
The will need to be used however if we were to attempt a quantitive analysis.
10
Velocity – time Graphs
It is possible to produce a velocity time graph to describe the motion of an object. All velocity time graphs
that you encounter in this course will be of objects that have constant acceleration.
Scenario: The Bouncing Ball
Lydia fires a ball vertically into the air from the ground. The ball reaches its maximum height, falls,
bounces and then rises to a new, lower, maximum height.
What will the velocity time graph for this motion look like?
First decision: The original direction of motion is up so upwards is the positive direction
Part One of Graph
Now we need to think, what is happening to the velocity?
The ball will be slowing down whilst it is moving upwards, having a velocity of zero when it reaches
maximum height. The acceleration of the ball will be constant if we ignore air resistance.
v
u
ball moving upwards [+ve values for v] but
accelerating downwards [-ve gradient]
0
t
11
Velocity – time Graphs (continued)
Part Two of Graph
Once the ball reaches its maximum height it will begin to fall downwards. It will accelerate at the same rate
as when it was going up. The velocity of the ball just before it hits the ground will be the same magnitude as
its initial velocity upwards
v
u
ball moving downwards [-ve values for v] and
accelerating downwards [-ve gradient]
0
-u
t
velocity of ball just before landing
same magnitude as initial velocity
of ball.
Part Three of Graph
The ball has now hit the ground. At this point it will rebound and begin its movement upwards.
In reality there will be a finite time of contact with the ground when the ball compresses and regains its
shape. In this interpretation we will regard this time of contact as zero. This will result in a disjointed graph.
The acceleration of the ball after rebounding will be the same as the initial acceleration. The two lines will
be parallel.
v
u
velocity of ball after rebounding
less than initial velocity of ball.
0
t
-u
This now is the velocity time graph of the motion described in the original description.
12
Converting Velocity – time Graphs to Acceleration – time Graphs
What is important in this conversion is to consider the gradient of the velocity-time graph line.
In our example the gradient of the line is constant and has a negative value. This means for the entire time
sampled the acceleration will have a single negative value.
v
0
t
a
0
t
All acceleration time graphs you are asked to draw will consist of horizontal lines, either above, below or on
the time axis.
Reminder from National 5
The area under a speed time graph is equal to the distance travelled by the object that makes the speed
time graph.
In this course we are dealing with vectors so the statement above has to be changed to:
The area under a velocity time graph is equal to the displacement of the object that makes the speed time
graph.
Any calculated areas that are below the time axis represent negative displacements.
13
1.2 Forces, Energy and Power
Forces
Newton’s 1st Law of Motion (Revision of National 5)
An object will remain at rest or travel in a straight line at a constant velocity (or speed) if the forces are
balanced. ����������������������������
engine
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friction
force
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 If we consider the car moving in a straight line. If the engine force = friction, it will continue to
move at a constant velocity (or speed) in the same direction.
 If the same car is stationary (not moving) and all forces acting on it are balanced (same as no force
at all) the car will not move.
Newton’s 2nd Law of Motion (Revision of National 5)
This law deals with situations when there is an unbalanced force acting on the object.
The velocity cannot remain constant and the acceleration produced will depend on:
 the mass (m) of the object (a α 1/m) - if m increases a decreases and vice versa;
 the unbalanced force (F)
(a α F) - if F increases a increases and vice versa.
This law can be summarised by the equation
F = ma
T
Newton’s 3rd Law of Motion (Revision of National 5)
Newton
noticed that forces occur in pairs. He called one force the action and the other the
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reaction.
These two forces are always equal in size, but opposite in direction. They do not
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both
act
on
the same object (do not confuse this with balanced forces).
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Newton’s
Third Law can be stated as:
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If an object A exerts a force (the action) on object B, then object B will exert an equal,
but opposite force (the reaction) on object A.
For example:
a) Kicking a ball
b) Rocket flight
Action
Action:
The foot exerts a
force on the ball to
the right
Reaction: The ball exerts an
equal force on the
left to the foot
Action:
Reaction
The rocket pushes gases
out the back
Reaction: The gases push the rocket
in the opposite direction.
14
Resultant Forces – Horizontal
When several forces act on one object, they can be replaced by one force which has the same effect.
This single force is called the resultant or unbalanced force. Remember that Friction is a resistive
force which acts in the opposite direction to motion.
Example: Horizontal
A motorcycle and rider of combined mass 650 kg provide an engine force of 1200 N. The friction
between the road and motorcycle is 100N and the drag value = 200N.
Calculate:
a) the unbalanced force acting on the motorcycle
200N
b) the acceleration of the motorcycle
1200N
100N
Solution
a) Draw a free body diagram
F = 1200 - (200 + 100)
F = 900 N
This 900 N force is the resultant of the 3 forces
b) F = 900 N
F = ma
a=?
900 = 650 x a
m = 650 kg
a = 1.38 ms-2
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15
Resultant Forces – Vertical (Rocket)
Example
At launch, a rocket of mass 20 000 kg accelerates off the ground at 12 ms-2 (ignore air resistance)
a) Use Newton’s 3rd law of motion to explain how the rocket gets off the ground.
b) Draw a free body diagram to show all the vertical forces acting on the rocket as it accelerates
upwards.
c) Calculate the engine thrust of the rocket which causes the acceleration of 12ms-2.
Solutions
a) The rocket pushes the gas out the back downwards (action) and the gas pushes the rocket
upwards (reaction).
b)
Engine thrust
Weight
Engine thrust = ?
c) Calculate F and W
F=ma
F = 20 000 x 12
F = 240 000 N
W=mg
W = 20 000 x 9.8
W = 196 000 N
m = 20000 kg
F = upward force (thrust) – downwards force (Weight)
240 000 = thrust – 196 000
thrust = 436 000 N
16
W = mg
F = ma
Resultant Forces – Vertical (Lift)
Have you noticed that when you are in a lift you experience a strange
feeling when the lift starts to move and as it begins to slow to a stop.
However when the lift is in the middle of its journey you cannot
tell if you are moving at all.
weight
This is because at the start and end of the journey you will
experience an acceleration and consequently an unbalanced force.
This unbalanced force is what you ‘feel’.
Apparent
weight
When you stand on a set of scales (Newton Balance) the reading
on the scales is actually measuring the upwards force.
This is the force the scales exert on you.
We will call this the Apparent Weight.
Now this is fine when you are in your bathroom trying to find
your weight.
Normally, you and your bathroom scales will be stationary and so your weight will be equal to the upwards
force (balanced forces).
When you weigh yourself when you are accelerating the reading on the scales will not be your weight. The
reading will give you an indication of the unbalanced force acting on you, which could then be used to
calculate an acceleration. This unbalanced force could be acting up or down depending on the magnitude
and direction of the acceleration.
The value of the Apparent Weight will be equal to the Tension T in the cable of the lift.
The table below explains the motion of a lift as it moves from an upper floor to a lower floor and then
back to the original floor.
Motion
Comparing W and T
Unbalanced Force F
Stationary at top
W=T
F=0
Accelerating down
T decreases W > T
F=W–T
Constant velocity down
T increases W = T
F=0
Decelerating down
T increases T > W
F=T–W
Stationary at bottom
T decreases T = W
F=0
Accelerating up
T increases T > W
F=T–W
Constant speed up
T decreases T = W
F=0
Decelerating up
T decrease W > T
F=W-T
17
Sensation in lift
Lighter
Heavier
Heavier
Lighter
Resultant Forces – Vertical (Lift continued)
Example
A man of mass 70 kg stands on a set of bathroom scales in a lift. Calculate the reading on the scales when
the lift is accelerating downwards at 2 ms-2.
Solution
Remember that the reading on the scales = apparent weight = tension in the cable
a) Calculate F and W
F=ma
F = 70 x 2
F = 140 N
Reading on scale = ?
W=mg
W = 70 x 9.8
W = 686 N
m = 70 kg
From the table on the previous page:
When the lift is accelerating down
W = mg
F = W – reading
140 = 686 – reading
Reading on scale = 546 N
18
F = ma
Internal Forces
An example of an internal force is the tension in the towbar (magnified below) when a car is pulling a
caravan.
In higher physics, a common question in the SQA exam you are asked is to calculate the tension
between the two objects.
Example
A car of mass 700 kg pulls a 500 kg caravan with a constant engine thrust of 3.6 kN.
Calculate the tension in the towbar during the journey (ignoring friction)
3600 N
Solution: HINT Calculate the acceleration of the whole system using F = ma
F = 3600 N
m = 500 + 700 = 1200 kg
a=?
a=F/m
a = 3600 / 1200
a = 3 ms-2
Use this acceleration to calculate the tension and use the mass of the caravan only as this is the
mass of the object being pulled.
T=?
m = 500 kg
a = 3ms-2
T = ma
T = 500 x 3
T = 1500 N
19
Forces on a Slope
Ever wondered why a ball rolls down a hill without being pushed or a skier can ski down a run without
an initial force. In order to understand why this happens we need to look at the forces exerted on an
object resting on a slope
R
Wparallel
W
W is the weight of the object and R is the reaction force acting perpendicular to the slope.
If we draw these two forces tip to tail as described in section 1.1 we get the resultant force Wparallel
shown in the diagram below.
Wparallel
mg sin θ
W
mg
R
mg cos θ
θ
θ
Wparallel = mgsinθ
Wperpindicular = mgcosθ
20
Forces on a Slope (continued)
Example
A car of mass 1000 kg is parked on a hill. The slope of the hill is 20o to the horizontal. The brakes on
the car fail. The car runs down the hill for a distance of 75 m until it crashes into a hedge. The average
force of friction on the car as it runs down the hill is 250 N.
(a) Calculate the component of the weight acting down(parallel to) the slope.
(b) Find the acceleration of the car.
(c) Calculate the speed of the car just before it hits the hedge.
friction
Wparallel
30º
Solution
(a) Wparallel = mgsinθ
= 1000 x 9.8 sin30
= 4900 N
(b) F = Wparallel – Friction
= 4900 – 250
= 4650 N
a=F/m
a = 4650 / 1000
a = 4.65 ms-2
(c) s = 75 m
u = 0 (parked at rest)
v=?
a = 4.65 ms-2
t=
v2 = u2 + 2as
v2 = 0 + 2 x 4.65 x 75
v = 26.4 ms-1
21
Energy
Conservation of Energy
One of the fundamental principles of Physics is that of conservation of energy.
Energy cannot be created or destroyed, only converted from one form to another.
Work is done when converting from one form of energy to another. Power is a measure of the rate at
which the energy is converted.
There are a number of equations for the different forms of energy:
Ew
Ek
Ep
Eh
Eh
E
=
=
=
=
=
=
Fs
½ mv2
mgh
cmΔT
ml
Pt
All forms of energy can be converted into any other form, so each of these equations can be equated to
any other.
Example:
A skier of mass 60 kg slides from rest down a slope of length 20 m. The initial height of the skier was 10
m above the bottom and the final speed of the skier at the bottom of the ramp was 13 ms -1.
20 m
10 m
Calculate:
(a)
the work done against friction as the skier slides down the slope;
(b)
the average force of friction acting on the skier.
Solution
(a)
Calculate Ep= mgh to work out
the amount of energy converted.
Ep= mgh
Ep= 60 x 9.8 x 10
Ep= 5880 J
(b) Use Ew = Fs
5880 = F x 20
F = 5880/20
F = 294N
22
1.3 Collisions, Explosions and Impulse
Momentum
Conservation of Momenutum
Momentum is the measure of an object’s motion and is the product of mass and velocity.
p
=
mv
Since velocity is a vector so is momentum, therefore momentum a direction and we must apply the
convention of + ve and – ve directions.
An object can have a large momentum for two reasons, a large mass or a large velocity.
The law of conservation of linear momentum can be applied to the interaction (collision) of two
objects moving in one dimension:
In the absence of net external forces total momentum before = total momentum after
Collisions
The law of conservation of momentum can be used to analyse the motion of objects before and after
a collision and an explosion. Let’s deal with collisions first of all.
A collision is an event when two objects apply a force to each other for a relatively short time.
Example:
A trolley of mass 4.0 kg is travelling with a speed of 3 m s-1. The trolley collides with a stationary trolley
of equal mass and they move off together.
Calculate the velocity of the trolleys immediately after the collision.
Solution
4.0 kg
3 m s-1
m1u1
( 4.0 × 3 )
+
+
4.0 kg
4.0 kg 4.0 kg
0 m s-1
v m s-1
m2u2
( 4.0 × 0 )
12
v
v
=
=
=
=
=
(m1 +m2)v
(4+4)×v
8v
12
8
1.5 m s-1
23
Kinetic Energy – Elastic and Inelastic Collisions
Elastic and Inelastic Collisions
When two objects collide their momentum is always conserved but, depending on the type of
collision, their kinetic energy may or may not be. Take the two examples below:
1.
If you were to witness this car crash you would hear it happen. There would also be heat energy at the
point of contact between the cars.
These two forms of energy will have come from the kinetic energy of the cars, converted during the
collision.
Here, kinetic energy is not conserved as it is lost to sound and heat. This is an inelastic collision.
In an elastic collision
Ek before
≠
Ek after
e
e
2.
When these two electrons collide they will not actually come into contact with each other, as their
electrostatic repulsion will keep them apart while they interact.
There is no mechanism here to convert their kinetic energy into another form and so it is conserved
throughout the collision.
In an elastic collision
Ek before
=
Ek after
24
Elastic and Inelastic Collisions (continued)
Example:
A car of mass 2000 kg is travelling at 15 m s-1. Another car, of mass 1500kg and travelling at 25 m s-1
collides with it head on. They lock together on impact and move off together.
(a)
Determine the speed and direction of the cars after the impact.
(b)
Is the collision elastic or inelastic? Justify your answer.
Solution
2000 kg
1500 kg
15 m s-1
25 m s-1
m 1u 1
( 2000 × 15 )
3 × 104
+
+
+
2000 kg
1500 kg
v m s-1
m 2u 2
(1500 × (−25) )
(– 37.5 × 104 )
=
=
=
v
=
(m1 + m2)v
( 2000 + 1500 ) × v
3500 v
3
-7.5 × 10
3500
– 2.1 m s-1
=
The cars are travelling at 2.1 m s-1 to the left.
(b)
Ek before
Ek after
=
=
=
=
=
=
=
½m1u2
( ½ × 2000 × 152 )
2.25 × 105
6.94 × 105 J
½mtotv2
½ × 3500 × 2.12
7.72x103 J
+
+
+
½m2u2
(½ × 1500 × 252 )
4.69 × 105
Kinetic energy has not been conserved, therefore the collision is inelastic.
25
Explosions
In a simple explosion two objects start together at rest then move off in opposite directions.
Momentum must still be conserved, as the total momentum before is zero, the total momentum after
must also be zero.
Example
An early Stark Jericho missile is launched vertically and when it reaches its maximum height it
explodes into two individual warheads.
Both warheads have a mass of 1500 kg and one moves off horizontally, with a velocity of 2.5 km s-1
(Mach 9) at a bearing of 090°.
Calculate the velocity of the other warhead.
Solution
1500 kg 1500 kg
1500 kg
1500 kg
0 m s-1
v km s-1
2.5 km s-1
0
0
=
m1v1
1500 × v1
=
+
+
m2v2
1500 × 2.5 ×
103
1500 × v1
=
v1
v1
=
=
–1500 × 2.5x103
3.75 × 106
− 1500
−2.5 × 103 m s-1
The negative sign in the answer indicates the direction of v1 is opposite to that of v2,
i.e. 270° rather than 090°.
Newton’s
Third Law
Second warhead
is travelling
at 2.5and
km Momentum
s-1 on a bearing of 270°.
Collisions
Collisions
ptotal before = ptotal after
ptotal before = ptotal after
m1u1 + m2u2 = m1v1 + m2v2
0 = m1v1 + m2v2
m1u1 – m1v1 = m2v2 – m2u2
–m1 ( v1 – u1 ) = m2 ( v2 – u2 )
m1v1 = - m2v2
m1v1 = - m2v2
t
t
m1a1 = - m2a2
F1 = - F2
–m1 ( v1 – u1 ) =
m2 ( v2 – u2 )
t
t
–m1a1 = m2a2
–F 1 = F 2
26
Impulse
Impulse
From Newton’s Second Law:
F
=
ma
F
=
ma
= m(v–u)
t
= ( mv – mu )
t
This expression states that the unbalanced force acting on an object is equal to the rate of change of
momentum of the object. This was how Newton first stated his 2nd Second Law.
Impulse is the product of force and time, measured in N s. Impulse is the cause of a change in
momentum. Rearranging Newton’s Second Law from above:
Ft = mv – mu
(impulse has no symbol of its own)
Ft = Δp
Impulse is equal to the change in momentum, measured in kg m s-1.
F × t (N s), or
mv – mu (kg m s-1).
This means you can calculate the impulse from:
A change in momentum depends on:


The size of the force
The time the force acts
Example:
A force of 100 N is applied to a ball of mass 150 g for a time of 0.020 s.
Calculate the final velocity of the ball.
Solution
Solution:
F
m
t
u
=
=
=
=
100N
0.150 kg
0.020 s
0 m s-1
Ft
100 × 0.020
2.0
v
v
=
=
=
=
=
mv – mu
0.150 × (v – 0 )
0.150 v
2/0.15
13.3 m s-1
27
Impulse Graphs
F/N
0
Ft =
Ft =
impulse
t/s
=
change in momentum
area under F - t graph
In reality, the force applied is not usually constant.
The analysis of the force acting on an object causing it to change speed can be complex. Often we will
examine the force over time in graphical form.
Consider what happens when a ball is kicked.
Once the foot makes contact with the ball a force is applied, the ball will compress as the force
increases.
When the ball leaves the foot it will retain its original shape and the force applied will decrease.
This is shown in the graph below.
28
Impulse Graphs (continued)
If a ball of the same mass that is softer is kicked and moves of with the same speed as that
above, then a graph such as the one below will be produced.
Contact
Contact
begins
ends
Duration
t
The maximum force applied is smaller but the time it is applied has increased. Since the ball has
the same mass and moves off with the same speed its impulse will be the same as the original.
This results in a graph of the same area but different configuration.
Example
A tennis ball of mass 100 g, initially at rest, is hit by a racquet.
The racquet is in contact with the ball for 20 ms and the force of contact varies over this period,
as shown in the graph.
0
Determine the speed of the ball as
it leaves the racquet.
Solution
Impulse = area under graph
= ½ × 20 × 10–3 × 400
=4Ns
u=0
m = 100 g = 0.1 kg
v=?
Ft = mv – mu
4 = 0.1v – (0.1 × 0)
4 = 0.1v
v = 40 ms–1
29
Practical Applications – Car Safety
Essentially the greater the time you can take to decelerate an object, the smaller the force you need
to apply. If your face is slowed by the dashboard the time to stop after you make contact with the
dashboard will be small, resulting in a large force and a big OWWWWWW!!
Airbags
The concept of the airbag - a soft pillow to land against in a crash - has been
around for many years. The first patent on an inflatable crash-landing device for airplanes was filed
during World War II. In the 1980s, the first commercial airbags appeared in cars.
Stopping an object's momentum requires a force acting over a period of
time. When a car crashes, the force required to stop an object is very large
because the car's momentum has changed instantly while the passengers'
has not, there is not much time to work with. The goal of any restraint
system is to help stop the passenger while doing as little damage to him
or her as possible. What an airbag wants to do is to slow the passenger's
speed to zero with little or no damage. To do this it needs to increase
the time over which the change in speed happens.
Crumple Zones
Placed at the front and the rear of the car, they absorb the crash energy developed during an impact.
This is achieved by deformation. While certain parts of the car are designed to allow deformations,
the passenger cabin is strengthened by using high-strength steel and more beams. Crumple zones
delay the collision. Instead of having two rigid bodies instantaneously colliding, crumple zones
increase the time before the vehicle comes to a halt. This reduces the force experienced by the
driver and occupants on impact. The change in momentum is the same with or without a crumple
zone.
30
1.4 Gravitation
Projectile Motion
Projectiles
A projectile is any object, which, once projected, continues its motion by its own inertia and is
influenced only by the downward force of gravity.
Most projectiles have both horizontal and vertical components of motion. As there is only a single
force, gravity, acting in a single direction, which means only one of the components is being acted
upon by the force. The two components are not undergoing the same kind of motion and must be
treated separately.
air resistance
Free Fall
When objects travel through the air, they have more than one force acting
acting on them.
When an object is allowed to fall towards the Earth it will accelerate because of
the force acting on it due to gravity, its weight. This will not be the only force acting
on it though. There will be an upwards force due to air resistance.
Air resistance increases with speed; you may notice this if you increase your
speed when cycling.
weight
air resistance
If an object is allowed to fall through a large enough distance then the air
resistance force may increase to become the same magnitude as weight of
the object. The forces are now balanced and the object will fall with
constant velocity, known as terminal velocity.
31
weight
Horizontal Projection
Here is a classic horizontal projectile scenario,
from the time of Newton.
In projectile motion we ignore all air resistance,
or any force other than gravity.
Analysis of this projectile shows the two
different components of motion.
Horizontally: there are no forces acting on the
cannonball and therefore the horizontal
velocity is constant.
Vertically: The force due to gravity is constant
in the vertical plane and so the cannonball
undergoes constant acceleration.
The combination of these two motions causes
the curved path of a projectile.
Example
The cannonball is projected horizontally from the cliff with a velocity of 100 m s-1. The cliff is 20 m high.
Determine:
(a)
the vertical speed of the cannonball, just before it hits the water;
(b)
if the cannonball will hit a ship that is 200 m from the base of the cliff.
Solution (Hint: time is the only quantity which can cross the horizontal and vertical barrier. Calculate t on one
side and use it on the other)
Horizontal (use d = vt)
Vertical (use 3 equations of motion)
d=?
s = 20 m
v = 100 m s−1
u=0
t=?
v=?
a = 9·8 m s−2
t=?
(b) ctd
d
d
d
=
=
=
vt
100 × 2·02
202 m
The cannonball will hit the
ship.
(a) v2
v2
v2
v
Use t = 2.02 s
(b) v
on the
19·8
horizontal
side
t
t32
=
=
=
=
u2 + 2as
02 + 2 × 9·8 ×20
392
19·8 m s−1
=
=
u + at
0 + ( 9·8 × t )
=
=
19·8
9·8
2·02 s
Projection at an Angle
Projectiles at an angle are an application for our knowledge of splitting vectors into their horizontal
and vertical components.
Example : The athlete has thrown the javelin at a velocity of 50 ms-1 at an angle of 60o to the
horizontal.
trajectory
50 m s-1
60o
vv
vh
range
There is still only the single force of gravity acting on the projectile, so horizontal and vertical motions
must still be treated very separately. This means that the velocity at an angle must be split into its
vertical and horizontal components before any further consideration of the projectile.
You will never use the velocity at an angle (here 50 ms-1) directly in any calculation!
Points to remember!!!
For projectiles fired at an angle above a horizontal surface:
1.
The path of the projectile is symmetrical, in the horizontal plane, about the highest point. This
means that:
initial vertical velocity = − final vertical velocity
uv = − vv
2.
The time of flight = 2 × the time to highest point.
3.
The vertical velocity at the highest point is zero.
33
Projection at an Angle Calculation
Example
–1
A golfer hits a stationary ball and it leaves his club with a velocity of 14 m s
–1
14 ms at an angle of 20° above the horizontal.
20°
(a)
(b)
(c)
(d)
Calculate:
(i)
the horizontal component of the velocity of the ball;
(ii)
the vertical component of the velocity of the ball.
Calculate the time for the ball to reach its maximum height.
Calculate the total time of flight of the ball
How far down the fairway does the ball land?
Solution
Horizontal
d=?
vH = 13·1 m s−1
t=?
(a) (i) vH = v cos Ө
vH = 14 cos 20
vH = 13.1 ms-1
(d) d = vH t
d = 13.1 x 0.96
d = 12.8 ms-1
Vertical
s=?
uv = 4·8 m s−1
v = 0 ( at top)
a = −9·8 m s−2
t=?
(a) (ii) vH = v sin Ө
vH = 14 sin 20
vH = 4.8 ms-1
= 14 cos20
(b) v
=
u + at
0
=
4·8 + ( −9·8 × t )
9·8 × t
=
4·8
4·8
t
=
9·8
t
=
0·49 s
(c) total time = 2 x 0.49 s
= 0.96 s
34
=
14 cos20
= 13·1 m s−1
Newton and Gravity
Newton’s Thought Experiment – Satellite’s orbit as an Application of Projectiles
Isaac Newton, as well as giving us the three laws, came up with an ingenious thought experiment for
satellite motion that predated the first artificial satellite by over 300 years.
Essentially Newton suggested that if a cannon fired
a cannonball it would fall towards the Earth. If it was
fired at ever higher speeds then at some speed it
would fall towards the Earth but never land since the
curvature of the Earth would be the same as the flight
path of the cannonball. This would then be a satellite.
You would need a high mountain and an enormous
cannon, but it would work.
Gravity
There is much confusion in Physics of the difference between mass and weight. This could be because
the word weight is used, wrongly, in everyday life. People are always talking about their ‘weight’. The
need to ‘lose weight’ or ‘gain weight’.
What they are really talking about is their mass. This is a
measure of how much matter an object contains. This will
only change if matter is added to or taken from the object.
We can see this on a person as their body shape changes as
matter is added or taken away.
What is Gravity?
Gravity is caused by mass. Any object that has mass will have its own gravitational field. The
magnitude of the field depends on the mass of the object. Now, you are thinking that this is nonsense.
If this were the case then everything on Earth would have it’s own gravity and that’s just not true.
Well, actually, it is true. It’s just that those gravitational forces are so small that we don’t notice them.
Remember, the gravitational pull of the Earth is 9.8 Nkg-1 and the Earth has a mass of 5.97 × 1024 kg
just think how tiny the gravitational pull you exert must be.
Gravity is a force that permeates the entire universe; scientists believe that stars were formed by the
gravitational attraction between hydrogen molecules in space. The attraction built up, over time, a
large enough mass of gas such that the forces at the centre of the mass were big enough to cause the
hydrogen molecules to fuse together, generating energy. This is what is happening in the centre of the
sun. The energy radiating outwards from the centre of the sun counteracts the gravitational force
trying to compress the sun inwards.
gravitational pull
core reaction push
In time the hydrogen will be used up, the reaction will stop and
the sun will collapse under its own gravity. If you expect to live
for 4 or so billion years you could worry about this.
35
Newton’s Universal Law of Gravitation
Newton produced what is known as the Universal Law of Gravitation
F=
Gm1 m2
r2
G is the universal constant of gravitation = 6·67 × 10−11 m3 kg−1 s−2.
Newton’s Law of gravitation states that the gravitational attraction between two objects (m 1 and m2)
is directly proportional to the mass of each object and is inversely proportional to the square of their
distance (r) apart.
Gravitational force is always attractive, unlike electrostatic or magnetic forces.
The distance r between the two objects is the distance between their centres of mass. This is
especially important when considering planetary bodies. For example, the radius of the orbit of the
moon is only the distance from the surface of the Earth to the surface of the Moon, not the distance
between their centres of mass.
Example
Consider a folder, of mass 0.3 kg and a pen, of mass 0.05 kg, sitting on a desk, 0.25 m apart.
Calculate the magnitude of the gravitational force between the two masses. (Assume they can be
approximated to spherical objects).
Solution
0.3 kg
F=?
m1 = 0.3 kg
m2 = 0.05 kg
r = 0.25 m
G = 6·67 × 10−11 m3 kg−1 s−2
0.05 kg
0.25 m
F = G m1 m2
r2
F = 6.67 x 10-11 x 0.3 x 0.05
0.252
F = 1.6 x 10 – 11 N
Application of Gravitational Force – The ‘Slingshot Effect’
Another application of the gravitational force is the use made of the
‘slingshot effect’ by space agencies to get some ‘free’ energy to
accelerate their spacecraft. Simply put they send the craft close to
a planet, where it accelerates due to the gravitational field of the
planet. Here’s the clever part, if the trajectory is correct the craft
then speeds past the planet with the increased speed. Don’t get it
right and you still get a spectacular crash into the planet, could be
fun but a bit on the expensive side!
36
1.5 Special Relativity
Relativity
Introduction to Relativity
Einstein originally proposed his theory of special relativity in 1905 and it is often taken as the
beginning of modern Physics. It was one of four world changing theories published by Einstein that
year, known as the Annus Mirabilis (miracle year) papers. Einstein was 26.
I wonder, what would happen
if I was travelling at the speed
of light and looked in a mirror?
Relativity has allowed us to examine the mechanics of the universe far beyond that of Newtonian
mechanics, especially the more extreme phenomena such as black holes, dark matter and the
expansion of the universe, where the usual laws of motion and gravity appear to break down.
Special Relativity was the first theory of relativity Einstein proposed. It was termed as ‘special’ as it
only considers the ‘special’ case of reference frames moving at constant speed. Later he developed
the theory of general relativity which considers accelerating frames of reference.
37
Reference Frames
Relativity is all about observing events and measuring physical quantities, such as
distance and time, from different reference frames. Here is an example of the
same event seen by three different observers, each in their own frame of reference:
Event 1: You are reading your Kindle on the train. The train is travelling at 60
mph.
Observer
Location
Observation
1
Passenger sitting next
to you
You are stationary
2
Person standing on
the platform
You are travelling
towards them at 60
mph
3
Passenger on train
travelling at 60 mph
in opposite direction
You are travelling
towards them at 120
mph.
This example works well as it only involves objects travelling at relatively low speeds. The
comparison between reference frames does not work in quite the same way, however, if objects are
moving close to the speed of light.
Event 2: You are reading your Kindle on an interstellar train. The train is travelling at 2 × 10 8 m s-1.
Observer
Location
Observation
1
Passenger sitting next
to you
You are stationary
2
Person standing on
the platform
You are travelling
towards them at 2 ×
108 ms-1
3
Passenger on train
travelling at 2 × 108 m
-1 in opposite
direction
You are travelling
towards them at
4 × 108 ms-1
The observation made by observer 3 is impossible as an object cannot travel faster than the speed
of light in any reference frame and it would certainly be impossible to watch something travel faster
than light, so this scenario is impossible.
38
The Principles of Relativity
The Principles of Relativity - Introduction
Using his imagination and performing thought experiments (gedanken) like those above, Einstein
came up with two principles, or postulates, to explain the problem of fast moving reference frames.
These were later proved with a vast array of data from many different experiments and became very
clear once we started communicating with satellites, in orbit.
The postulates of Special Relativity:
1. When two observers are moving at constant speeds relative to one another, they will observe
the same laws of physics.
2. The speed of light (in a vacuum) is the same for all observers.
This means that no matter how fast you go, you can never catch up with a beam of light, since it
always travels at 3·0 × 108 ms–1 relative to you.
If you (or anything made of matter) were able to travel as fast as light, light would still move away or
towards you at 3·0 × 108 ms–1, as you are stationary in your own reference frame.
The most well-known experimental proof is the Michelson-Morley interferometer experiment.
Maxwell’s electromagnetism equations also corroborated these postulates.
Example: If a car ship is travelling through space at 90% of the speed of light and then switches on
its headlights. The passenger of the car will see the beams of the
headlights travel away from them at 3 × 108 ms-1.
An observer on Earth will also observe light of the beams travelling
at 3 × 108 ms-1.
The speed of light, c, is constant in and between all reference frames
and for all observers.
These principles have strange consequences for the measurement
of distance and time between reference frames.
39
Time Dilation
Time Dilation
We can conduct a thought experiment of our own, showing that one consequence of the speed of
light being the same for all observers is that time experienced by all observers is not necessarily the
same. There is no universal clock that we can all refer to – we can only make measurements of time
as we experience it.
Time is different for observers in different reference frames because the path they observe for a
moving object is different.
Event 1: Inside a moving train carriage, a tennis ball is thrown straight up and caught in the same
hand.
h
Observer 1, standing in train carriage, throws tennis ball straight up and catches it
in the same hand.
In Observer 1’s reference frame they are stationary and the ball has gone straight
up and down.
Observer 1 sees the ball travel a total distance of 2h.
The ball is travelling at a speed v.
The period of time for the ball to return to the observers hand is :
t = 2h / v
Observer 2, standing on the platform watches the train go past at a speed, v, and sees the
passenger throw the ball. However, to them, the passenger is also travelling horizontally, at speed
v. This means that, to Observer 2, the tennis ball has travelled a horizontal distance, as well as a
vertical one.
d
d
v
Observer 2 sees the ball travel a total distance of 2d.
The period of time for the ball to return to the observers hand is:
t’ = 2d / v
For observer 2, the ball has travelled a greater distance, in the same time.
40
Time Dilation (continued)
Event 2: You are in a spaceship travelling to the left, at speed v. Inside the spaceship cabin, a pulsed
laser beam is pointed vertically up at the ceiling and is reflected back down. The laser emits another
pulse when the reflected pulse is detected by a photodiode.
Reference frame 1: you,inside the cabin.
The beam goes straight up, reflects of the ceiling and travels
straight down.
h
t = 2h / c
Period of pulse
Reference frame 2: Observer on another, stationary ship.
d
d
v
Period of pulse
t’ = 2d / c
The time for the experiment as observed by the stationary ship ,t', is greater than the time observed
by you when moving with the photodiode t, i.e. what you might observe as taking 1 second could
appear to take 2 seconds to your stationary colleague. Note that you would be unaware of any
difference until you were able to meet up with your colleague again and compare your data.
41
Time Dilation Equation and the Lorentz Factor
𝐭′ =
𝐭
t’ is always observed by the stationary observer,
observing the object moving at speed. E.g. the
person on a train platform watching the train go
by, or an observer on Earth watching a fast moving
ship.
𝟐
√𝟏 − (𝐯𝐜𝟐 )
Note this is often written as:
t’ = tγ
where γ is known as the Lorentz Factor. It is used often in the study of special relativity and is given
by:
𝟏
𝛄 =
𝟐
√𝟏 − (𝐯𝐜𝟐 )
Example:
A rocket is travelling past Earth at a constant speed of 2.7 × 10 8 ms–1 .
The pilot measures the journey as taking 240 minutes.
How long did the journey take when measured by an observer on Earth?
Solution:
t = 240 minutes
c = 3 × 108 ms–1
v = 2.7 × 108 ms–1
t' = ?
t′ =
t
2
√1 − (vc2 )
t' =
240
8
2
√1 - (2.7 × 108)
3.0 × 10
t’ = 550 minutes
An observer on Earth would measure the journey as taking 550 minutes.
Why we do not notice relativistic time differences in everyday life?
A graph of the Lorentz factor versus speed (measured as a multiple of the speed of light) is shown
below.
We can see that for small speeds (i.e. less than
0.1 times the speed of light) the Lorentz factor is
approximately 1 and relativistic effects are negligibly
small. Even 0.1 times the speed of light is 300,000 ms–1
or 1,080,000 km h–1 or about 675,000 mph – a
tremendously fast speed compared to everyday life.
However, the speed of satellites is fast enough that
even these small changes will add up over time and
seriously affect the synchronisation of global positioning
systems (GPS) and television satellites with users on the
Earth. They have to be specially programmed to adapt for
the effects of special relativity (and also general relativity,
which is not covered here). Very precise measurements
of these small changes in time have been
42
performed
on fast-flying aircraft and agree with predicted results within experimental error.
Application of Time Dilation
Further evidence in support of special relativity comes from the field of particle physics, in the form
of the detection of a particle called a muon at the surface of the Earth. Muons are produced in the
upper layers of the atmosphere by cosmic rays (high-energy protons from space). The speed of
muons high in the atmosphere is 99·9653% of the speed of light.
The half-life of muons when measured in a laboratory is about 2·2 μs.
Example:
Show, by calculation, why time dilation is necessary to explain the observation of
muons at the surface of the Earth.
Solution:
−6
s
v = 0.999653 × 3.00 × 108 = 2.998956 × 108 ms−1
d = ?
d = vt
d = 2.998956 × 108 × 2.2 × 10−6
d = 660 m
t' =
t
2
√1- (v2 )
c
t' =
2.2 × 10-6
√1 - (0.999653)2
t’ = 84 s
d’ = vt
d’ = 2.998956 × 108 × 84 × 10−6
d’ = 2.52 × 104 m
In the reference frame of an observer on Earth the half-life of the muon is recorded as 84 µs and
therefore from this perspective, the muon has enough time to travel the many kilometres to the
Earth’s surface.
A Twin Paradox
You leave Earth and your twin to go on a mission
in a spaceship travelling at 90% the speed of light
on a return journey that lasts 20 years. When
you get back you find that 46 years will have
elapsed on Earth. Your clock will have run slowly
compared to one on Earth, however as far as
you were concerned the clock would have been
working correctly on your spaceship.
You will look 26 years younger than your twin.
43
Length Contraction
Another implication of Einstein’s theory is the shortening of length when an object is moving.
Consider the muons discussed above. Their large speed means they experience a longer half-life
due to time dilation. An equivalent way of thinking about this is that the fast moving muons observe
a much shorter (or contracted) distance travelled, by the same amount as the time has increased (or
dilated). A symmetrical formula for length contraction can be derived.
v2
l = l √1- 2
c
'
Where l is the distance measured by an observer who is stationary and l’ the distance observed by
the observer who is moving at speed.
Example
Let’s take the example of a space ship flying away from Earth towards Proxima Centauri, our nearest
star, to study the observations due to length contraction. The distance to Proxima Centauri is 4.2 ly.
Length contraction only takes place in the direction that the object is travelling. For the pilot of the
space ship, this means that they will measure the distance, in front of them, between Earth and
Proxima as less than the distance measured by a stationary observer.
Let’s say the spaceship is travelling at 0.8 c.
l = 4.2 ly
l’ = ?
v = 0.8 c
l' = l √1-
v2
c2
l' = 4.2 √1- 0.82
l' = 2.52
l' = 2.5 ly
So the Pilot of the ship measures their journey as 2.5 ly.
Length Contraction – A Paradox
There is an apparent paradox thrown up by special relativity: consider a train that is just longer than
a tunnel. If the train travels at high speed through the tunnel does length contraction mean that,
from our stationary perspective, it fits inside the tunnel? How can this be reconciled with the fact
that from the train’s reference frame the tunnel appears even shorter as it moves towards the train?
The key to this question is simultaneity, i.e. whether different reference frames can agree on the
exact time of particular events. In order for the train to fit in the tunnel the front of the train must
be inside at the same time as the back of the train. Due to time dilation, the stationary observer
(you) and a moving observer on the train cannot agree on when the front of the train reaches the far
end of the tunnel or the rear of the train reaches the entrance of the tunnel. If you work out the
equations carefully then you can show that even when the train is contracted, the front of the train
and the back of the train will not both be inside the tunnel at the same time!
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1.6 The Expanding Universe
The Doppler Effect and Redshift
The Doppler Effect
The Doppler Effect is the change in the observed frequency of a wave, when the source or observer is
moving.
In this course we will concentrate on a wave source moving at constant speed relative to a stationary
observer.
You have already experienced the Doppler Effect many times. The most
noticeable is when a police car, ambulance or fire engine passes you. You
hear the pitch of their siren increase as they come towards you and then
decrease as they move away. Another memorable example is the sound
of a very fast moving vehicle, such as a Formula 1 car passing you (or
passing a microphone on the television), the sound of the engine rises
and falls in frequency as it approaches, passes and moves away.
The Doppler Effect applies to all waves, including light.
Uses of the Doppler Effect
 Police radar guns use the Doppler effect to measure the speed of motorists.
 Doppler is used to measure the speed of blood flow in veins to check for deep vein
thrombosis [DVT] in medicine.
Stationary Source
A stationary sound source produces sound waves at a constant frequency
f, and the wavefronts propagate symmetrically away from the source at a
constant speed, which is the speed of sound in the medium. The distance
between wave-fronts is the wavelength. All observers will hear the same
frequency, which will be equal to the actual frequency of the source: f =
f 0.
Moving Source
The sound source now moves to the right with a
speed vs. The wavefronts are produced with the same
frequency as before, therefore the period of each
wave is the same as before. However, in the time
taken for the production of each new wave the
source has moved some distance to the right. This
means that the wavefronts on the left are created
further apart and the wavefronts on the right are
created closer together. This leads to the spreading
out and bunching up of waves you can see to the right
and hence the change in frequency.
The frequency of the source will remain constant, it is the observed frequency that changes.
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The Doppler Effect Equations
More relevant to our learning in this section, the Doppler Effect is highly prominent in our
observations of the universe and provides some of the strongest evidence for major theories such as
the Big Bang and an expanding universe.
For a stationary observer with a wave source moving towards them, the relationship between the
frequency, fs, of the source and the observed frequency, fo, is:
𝐯
fo = 𝐟𝐬 (
)
𝐯 − 𝐯𝐬
v = speed of the wave
vs = speed of source
fs = frequency source
fo = observed frequency
For a stationary observer with a wave source moving away from them, the relationship between
the frequency, fs, of the source and the observed frequency, fo, is:
fo = 𝐟𝐬 (
𝐯
)
𝐯 + 𝐯𝐬
This second scenario is exactly what is observed when we look at the light from distant stars,
galaxies and supernovae, evidence that the universe is expanding. These relationships also allow us
to calculate the speed at which an exoplanet is orbiting its parent star, or the velocity of stars
orbiting a galactic core, which has lead us to theorise the existence of dark matter.
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An Example of the Doppler Effect - Red Shift
Redshift is an example of the Doppler Effect. The light from stars, as observed from Earth, is always
reduced in frequency and shifted towards the red (longer wavelengths) end of the spectrum. This is
because the stars and galaxies are sources of light which are moving away from us.
Redshift has always been present in the light reaching us from stars and galaxies but it was first
noticed by astronomer Edwin Hubble, in the 1920’s, when he observed that the light from distant
galaxies was shifted to the red end of the spectrum (longer wavelengths).
The light emitted by a star is made up of the line spectra emitted by the different elements present
in that star. Each of these line spectra is an identifying signature for an element and these spectra
are constant throughout the universe. You will learn a lot more about spectra in the Particles and
Waves unit of this course.
Since these line spectra are so recognisable, we can compare the spectra produced by these
elements, on Earth, with the spectra emitted by a distant star or galaxy.
Examples of line spectra of different elements
Hubble examined the spectral lines from various elements and found that the spectra emitted by
each galaxy were shifted towards the red by a specific amount. This shift was due to the galaxy
moving away from the Earth at speed, causing the Doppler Effect to be observed. The bigger the
magnitude of the shift the faster the galaxy was moving.
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Redshift of a Galaxy Equation
Redshift, z, of a galaxy is given by:
z =
𝛌𝐨𝐛𝐬𝐞𝐫𝐯𝐞𝐝 − 𝛌𝐫𝐞𝐬𝐭
∆λ
=
𝛌𝐫𝐞𝐬𝐭
𝛌𝐫𝐞𝐬𝐭
Redshift of galaxies, travelling at non-relativistic speeds, can also be shown to be the ratio of the
velocity of the galaxy to the velocity of light:
z =
vgalaxy
c
As redshift is always calculated from the ratio of quantities with the same unit, it has no unit of its
own.
Over the course of a few years Hubble examined the red shift of galaxies at varying distances from
the Earth. He found that the further away a galaxy was the faster it was travelling away from us. The
relationship between distance and speed of a galaxy is known as Hubble’s Law.
Hubble’s Law
The graph below shows the data collected by Hubble.
It shows the relationship between the velocity of a galaxy v,
as it recedes from us, and its distance d, known as Hubble’s Law.
The gradient of the line is known as Ho – Hubble’s constant.
Ho = v / d
or
v = Ho d
Understanding Hubble’s Law
The parsec (pc)
Sun
1 Pc
Star
1’’
1 AU
Parallax angle
1’’ = 1 arcsecond
60’’ = 1’ = 1 arcminute
60’ = 1°
Earth
1 pc is the distance between the sun and an astronomical
object (star, galaxy etc.) when the parallax angle is 1’’.
The value of the Hubble constant is not known exactly, as the exact gradient of the line of best fit is
subject to much debate. However, as more accurate
measurements are made, especially for the
1 Mpc = 3·2 × 106 light years = 3·1 × 1022 m
distances to observable galaxies, the range of possible
48 values has reduced. It is currently thought to
lie between 50 – 80 kms−1 Mpc−1, with the most recent data putting it at 70.4 ± 1.4 kms−1 Mpc−1.
Calculating the Age of the Universe
Hubble’s observations show that galaxies are moving away from the Earth and each other in all
directions, which suggests that the universe is expanding. This means that in the past the galaxies
were closer to each other than they are today. By working back in time it is possible to calculate a
time when all the galaxies were at the same point in space. This allows the age of the universe to be
calculated.
v
d
H0
t
t=
t=
t=
=
=
=
=
speed of galaxy receding from us
distance of galaxy from us
Hubble’s constant
time taken for galaxy to travel that distance, i.e. the age of the universe
d
v
(v = Hod)
d
Ho d
1
Ho
Currently, using this method, NASA estimate the age
of the universe to be 13·7 billion years.
Since Hubble’s time, there have been other major
breakthroughs in astronomy and our ability to make
accurate observations of very distant objects. All of
these support the findings of Hubble, but allow
the age of the universe to be calculated even more
accurately.
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Evidence for the Expanding Universe
It is generally accepted, based on the evidence given previously, that the universe is expanding.
What is not known however is, what is going to happen to the universe in the future? There are
essentially two scenarios.
1. Closed universe: the universe will slow its expansion and eventually begin to contract.
2. Open universe: the universe will continue to expand forever.
Which of the two scenarios is more likely depends on one factor, what is the mass of the universe?
We come back to our old friend gravity.
How can we measure the mass of objects in space? You would need a big set of scales.
In fact astronomers can relate the orbital speed of galaxies to their masses.
The problem is that the masses measured seem to be bigger than the mass that can be accounted
for by the number of stars present in a galaxy.
This leads to the theory of ‘Dark Matter’. Basically there appears to be stuff there that we can’t see
and don’t know what it is, so for the moment give it a name and hope we find out what it actually is
later.
Now if that was the only thing it might not be too bad, but the universe is expanding at a greater
rate than astronomers would expect. It seems that something appears to be opposing the
gravitational force.
“Give it a name” I hear you cry!
So they did, they called it Dark Energy. Who said astronomers aren’t creative thinkers?
This increased expansion appears to verify Einstein’s inclusion of the cosmological constant in his
Special Theory of Relativity. This was an inclusion that he called “His greatest blunder.” He only
added it because he could not agree that the universe would eventually collapse, a theory around at
that time. There was no evidence to support his theory at the time and unfortunately he died before
the evidence that could support his theory was uncovered.
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Big Bang Theory
The universe started with a sudden appearance of energy which consequently became matter and is
now everything around us. There were two theories regarding the universe


The Steady State Universe: where the universe had always been and would always continue to
be in existence.
The Created Universe: where at some time in the past the universe was created.
Ironically the term ‘Big Bang’ was coined by Fred Hoyle a British astronomer who was the leading
supporter of the Steady State theory and who was vehemently opposed to the, currently named, Big
Bang theory.
What was the evidence that finally swung the balance towards the Big Bang theory?
We first need to consider how it is possible to determine the temperature of distant stars and galaxies.
You will have seen what happens to a piece of iron as it is heated, as it gets hotter its colour changes
from dull red to bright red to orange then yellow.
The observant amongst you may realize that these are the
first colours in the visible spectrum. The temperature of
an object determines the frequency of light it emits. This
idea has been with us for a long time; Jožef Stefan
proposed in 1879 that the power irradiated from an
object was proportional to its temperature in Kelvin
to the fourth power.
P = σT4
Where Stefan’s constant is σ = 5.67 x 10-8 Wm-2K-4.
What this means is that by examining the spectrum
of a distant star, its temperature can effectively be determined.
This graph also shows that intensity increases with temperature.
Gamow, Alpher and Herman, three physicists, had produced a
paper in 1948 that if the Big Bang had actually taken place then there would be a residual background
EM radiation, in the microwave region, in every direction in the sky representing a temperature of
around 2.7K.
This value for the wavelength of the light and it’s consequent equivalent temperature was arrived at
by considering how the light produced at the Big Bang would have changed as the universe expanded.
The discovery of this background radiation was another example of scientists finding something they
weren’t looking for.
Arnold Penzias and Robert Wilson were working for Bell Labs in the USA. They were working with a
special radio telescope [shown in the picture above] experimenting with satellite communication.
They were getting a residual signal that seemed to come from outside the galaxy. At first they though
it was actually due to pigeon droppings from the pigeons
that roosted in the horn. Finally they realised
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that they had found the echo of the Big Bang.
Big Bang Theory (continued)
In 1989 a satellite was launched to study the background radiation,
it was called the Cosmic Background Explorer [COBE].
In 1992 it was announced that COBE had managed to measure
fluctuations in the background radiation. This was further evidence
to support the Big Bang theory.
An image of the fluctuations is shown below.
Other evidence to support the Big Bang theory includes the relative abundances of hydrogen and
helium in the universe.
Scientists predicted that there should be a significantly greater proportion of hydrogen in the
universe. The next most abundant should be helium.
The elements present in the universe can be determined by spectroscopy, which you will study
later in unit 3.
The latest proportions are given in the table shown. These observations conform to the predicted
proportions.
Element
Relative Abundance
Hydrogen
10 000
Helium
1 000
Oxygen
6
Carbon
1
All others
1
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Olber’s Paradox - Big Bang Theory (continued)
Another is the explanation for Olber’s paradox. His paradox was in answer to the question, “why is
the sky dark at night?”
This is not as obvious as you first might imagine.
The sun has set at night
What about all the stars?
They’re suns as well
Wullie replies:
If the universe followed the Steady State model then there should be an even distribution of stars in
all directions. All the stars in the universe should be visible. This means the light from the stars
should reach Earth and the sky should be bright.
The Big Bang theory gives a finite age to the universe, and only stars within the observable universe
can be seen. This means that only stars within the distance of 15 000 light years will be observed.
Not all stars will be within that range and so the dark sky can be explained.
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